Hao Jie, Gao Yuxia, Zheng Chihui, Liu Jinguo, Hu Jun, Ju Yong
Key Laboratory of Bioorganic Phosphorus Chemistry & Chemical Biology, Ministry of Education, Department of Chemistry, Tsinghua University, Beijing 100084, China.
Department of Applied Chemistry, College of Science, China Agricultural University, Beijing 100193, China.
ACS Macro Lett. 2018 Sep 18;7(9):1131-1137. doi: 10.1021/acsmacrolett.8b00560. Epub 2018 Sep 6.
Cyclodextrin (CD)-based polyrotaxanes (PRs) and polypseudorotaxanes (PPRs) have attracted considerable attention due to their unique topological structures and functions. However, limited by the simple chemical structures and the single functionalization of guest polymer units like poly(ethylene glycol) (PEG) and poly(propylene glycol) (PPG), to date the construction of CD-based PRs and PPRs with precisely controllable supramacromolecular structures is fairly rare. In this work, two kinds of molecular necklace-like PPRs with CD-triterpenoid pairs were prepared via the size-dictated construction, where the threaded guest polymer was a natural product-tailored polyurethane (PU-PEG-GA) with the alternating structure of triterpenoid and PEG segments via a simple step-growth polymerization. Taking advantage of the differentiation in host-guest interactions between β/γ-CD and triterpenoid pairs, β-CD simultaneously located on both PEG segments and triterpenoid units in PU-PEG-GA, while γ-CD selectively recognized triterpenoid units. Consequently, the assembly morphology of PU-PEG-GA was adjusted hierarchically from micelles to worms and vesicles upon addition of β-CD, whereas they gradually collapsed to disappear in the presence of γ-CD. Our biocompatible PPRs with precisely controllable supramacromolecular structures may lead to the exploration on understanding and simulating macromolecular recognition using natural products.
基于环糊精(CD)的聚轮烷(PRs)和聚准轮烷(PPRs)因其独特的拓扑结构和功能而备受关注。然而,由于客体聚合物单元(如聚乙二醇(PEG)和聚丙二醇(PPG))的化学结构简单且功能单一,迄今为止,具有精确可控超分子结构的基于CD的PRs和PPRs的构建相当罕见。在这项工作中,通过尺寸控制构建法制备了两种具有CD-三萜对的分子项链状PPRs,其中穿线的客体聚合物是一种天然产物定制的聚氨酯(PU-PEG-GA),通过简单的逐步增长聚合反应,具有三萜和PEG链段的交替结构。利用β/γ-CD与三萜对之间主客体相互作用的差异,β-CD同时位于PU-PEG-GA中的PEG链段和三萜单元上,而γ-CD选择性地识别三萜单元。因此,加入β-CD后,PU-PEG-GA的组装形态从胶束逐步调整为蠕虫状和囊泡状,而在γ-CD存在下它们逐渐塌陷消失。我们具有精确可控超分子结构的生物相容性PPRs可能会引发对利用天然产物理解和模拟大分子识别的探索。